
Extractive Metallurgy Technician Course
Get the technical skills employers demand in modern metallurgical processing plants. This course covers the full extractive metallurgy value chain, from crushing and flotation to leaching, smelting, and electrowinning. Build job-ready competency backed by real plant procedures and quantitative tools.
What you will learn:
You will gain a thorough understanding of every major unit operation in extractive metallurgy, including comminution, mineral concentration, pyrometallurgical smelting, hydrometallurgical leaching, solvent extraction, and electrowinning. You will learn to perform mass balances, calculate metal recovery, and interpret process data to make sound operational decisions. The course also covers environmental management, laboratory analysis, process safety, and plant control systems. You will develop practical reporting skills and learn how to apply continuous improvement methods on the plant floor. By the end, you will be prepared to work confidently as a metallurgical technician in base metal, precious metal, or industrial mineral operations.
How you study in practice Extractive Metallurgy Technician Course
How you practice Extractive Metallurgy Technician Course
For companies that want to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Extractive Metallurgy
Foundations of Extractive Metallurgy
Lesson 1 • Pyrometallurgy, Hydrometallurgy, and Electrometallurgy
Introduces the three main processing routes and their governing principles. Students can match ore type to the most suitable extraction route.
Lesson 2 • Units, Measurements, and Mass Balances
Establishes quantitative tools essential for plant calculations. Accurate mass balances underpin every efficiency and recovery metric covered later.
Lesson 3 • The Metallurgical Value Chain
Traces material flow from mine face to refined metal. Connects each unit operation to downstream quality and cost outcomes.
Lesson 4 • Health, Safety, and Environmental Basics
Introduces hazard identification, personal protective equipment, and environmental obligations common to all metallurgical workplaces.
Lesson 5 • Introduction to Ores and Minerals
Covers mineral vs. ore distinctions, gangue identification, and grade concepts. Establishes vocabulary used throughout all subsequent processing chapters.
Chapter 2HideHide detailsSee detailsComminution and Size Classification
Comminution and Size Classification
Lesson 1 • Crushing Equipment and Operation
Covers jaw, gyratory, cone, and impact crushers, including feed preparation and product control. Links crusher selection to ore hardness and target product size.
Lesson 2 • Grinding Mills and Circuit Configurations
Examines ball, rod, SAG, and autogenous mills and their circuit arrangements. Students can identify open vs. closed circuit trade-offs.
Lesson 3 • Screening and Classification
Addresses vibrating screens, hydrocyclones, and classifiers used to separate particles by size. Connects classification efficiency to overall circuit performance.
Lesson 4 • Principles of Size Reduction
Explains breakage mechanisms, energy laws, and particle size distributions. Provides the theoretical basis for selecting and sizing comminution equipment.
Lesson 5 • Comminution Circuit Troubleshooting
Applies mass balance and equipment knowledge to diagnose and correct common circuit faults. Reinforces systematic problem-solving skills used throughout the course.
Chapter 3HideHide detailsSee detailsMineral Concentration Techniques
Mineral Concentration Techniques
Lesson 1 • Concentration Plant Metallurgical Accounting
Applies mass balance skills to calculate plant recovery, concentrate grade, and reagent consumption. Builds the reporting skills required in professional plant roles.
Lesson 2 • Froth Flotation Fundamentals
Introduces surface chemistry, collectors, frothers, and depressants governing bubble-particle attachment. Provides the chemical foundation for flotation circuit operation.
Lesson 3 • Gravity Concentration Methods
Covers jigs, spirals, shaking tables, and dense-media separation based on density differences. Establishes when gravity methods are economically preferred.
Lesson 4 • Magnetic and Electrostatic Separation
Explains low- and high-intensity magnetic separators and electrostatic roll separators. Students match separator type to mineral magnetic susceptibility.
Lesson 5 • Flotation Cell Operation and Circuits
Covers mechanical and column flotation cells, rougher-scavenger-cleaner circuit layouts, and concentrate grade-recovery trade-offs.
Chapter 4HideHide detailsSee detailsPyrometallurgical Smelting and Converting
Pyrometallurgical Smelting and Converting
Lesson 1 • Furnace Off-Gas and Fume Control
Explains gas capture, sulfur dioxide fixation, and particulate collection systems required for pyrometallurgical operations.
Lesson 2 • Converting and Blister Copper Production
Addresses Peirce-Smith and flash converting steps that oxidize matte to blister copper. Connects blow cycle control to copper grade and slag losses.
Lesson 3 • Roasting and Calcination Operations
Covers oxidizing, sulfating, and chloridizing roasting to prepare concentrates for smelting. Links roast product chemistry to downstream furnace performance.
Lesson 4 • Smelting Furnace Types and Operation
Examines flash, reverberatory, electric arc, and submerged arc furnaces used in base metal smelting. Students can identify key operating variables for each furnace type.
Lesson 5 • Slag Treatment and Metal Recovery
Covers slag cleaning furnaces, slow cooling, and flotation of converter slags to recover entrained metal values.
Chapter 5HideHide detailsSee detailsHydrometallurgical Leaching Operations
Hydrometallurgical Leaching Operations
Lesson 1 • Solution Purification and Impurity Control
Covers precipitation, cementation, and ion exchange for removing impurities from pregnant leach solutions before metal recovery.
Lesson 2 • Leaching Chemistry and Kinetics
Explains dissolution reactions, Eh-pH diagrams, and rate-controlling steps for common leach systems. Provides the chemical framework for all leaching unit operations.
Lesson 3 • Agitation and Vat Leaching
Addresses tank design, agitator selection, residence time, and slurry density control for higher-grade feeds. Connects agitation intensity to leach kinetics.
Lesson 4 • Heap and Dump Leaching
Covers ore agglomeration, pad construction, solution application, and drainage management for low-grade oxide ores. Links pad design to solution recovery efficiency.
Lesson 5 • Pressure Oxidation and Autoclave Operation
Introduces high-temperature, high-pressure oxidation of refractory sulfide ores. Students can identify autoclave operating parameters and safety requirements.
Chapter 6HideHide detailsSee detailsSolvent Extraction and Stripping
Solvent Extraction and Stripping
Lesson 1 • Stripping and Reagent Regeneration
Addresses stripping chemistry, strip solution composition, and loaded organic washing. Connects stripping efficiency to final electrolyte quality.
Lesson 2 • Mixer-Settler Design and Operation
Covers mixer-settler unit construction, phase dispersion, phase separation, and entrainment control. Links hydraulic balance to extraction stage efficiency.
Lesson 3 • Solvent Extraction Circuit Control
Applies flow ratio, pH, and temperature control strategies to maintain target extraction and stripping performance across shift changes.
Lesson 4 • Solvent Extraction Principles
Explains distribution coefficients, organic-to-aqueous ratios, and selectivity for target metals. Establishes the thermodynamic basis for reagent and diluent selection.
Chapter 7HideHide detailsSee detailsElectrometallurgical Recovery Processes
Electrometallurgical Recovery Processes
Lesson 1 • Electrowinning Cell Operation
Covers cell house layout, anode and cathode materials, electrolyte composition, and current density control for copper, zinc, and nickel electrowinning.
Lesson 2 • Electrorefining Principles and Practice
Distinguishes electrorefining from electrowinning and explains anode slime management and electrolyte purification cycles.
Lesson 3 • Electrochemical Fundamentals
Reviews Faraday's laws, electrode potentials, and current efficiency as applied to metal deposition. Provides the quantitative basis for cell design and production calculations.
Lesson 4 • Cell House Safety and Power Management
Addresses electrical hazards, rectifier operation, and energy consumption monitoring specific to high-current cell house environments.
Lesson 5 • Cathode Quality and Defect Analysis
Identifies common cathode defects such as nodulation, burning, and inclusions, and links each defect to its root cause and corrective action.
Chapter 8HideHide detailsSee detailsPlant Operations, Control, and Optimization
Plant Operations, Control, and Optimization
Lesson 1 • Continuous Improvement and Lean Principles
Applies root cause analysis, 5S, and waste elimination frameworks to metallurgical plant environments for sustained operational excellence.
Lesson 2 • Maintenance Coordination and Reliability
Covers planned maintenance scheduling, work order systems, and reliability metrics to minimize unplanned downtime in metallurgical plants.
Lesson 3 • Process Optimization Techniques
Introduces statistical process control, design of experiments, and key performance indicator trending to identify and sustain improvement opportunities.
Lesson 4 • Shift Operations and Handover Procedures
Establishes structured shift routines, log-keeping, and handover communication to maintain continuity and accountability across operating crews.
Lesson 5 • Metallurgical Accounting and Reconciliation
Applies mass balance and assay data to produce accurate monthly metal accounts and identify measurement errors or process losses.
Lesson 6 • Process Instrumentation and Control Loops
Covers sensors, transmitters, PID controllers, and distributed control systems used across metallurgical plants. Links instrument calibration to process stability.
Your valid completion certificate
This course is for you:
Mining laborers ready to move into technical processing plant roles.
Recent science graduates seeking hands-on industrial career entry points.
Maintenance technicians wanting to understand the metallurgical processes they support.
Environmental officers working on mine sites needing deeper process context.
Career changers from manufacturing drawn to the minerals processing industry.
Junior laboratory analysts aiming to expand into plant operations roles.
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